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首页> 外文期刊>Hydrology and Earth System Sciences >Technical Note: Semi-automated effective width extraction from time-lapse RGB imagery of a remote, braided Greenlandic river
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Technical Note: Semi-automated effective width extraction from time-lapse RGB imagery of a remote, braided Greenlandic river

机译:技术说明:半自动化有效宽度提取遥控器的RGB图像,编织格陵兰河

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摘要

River systems in remote environments are often challenging to monitor and understand where traditional gauging apparatus are difficult to install or where safety concerns prohibit field measurements. In such cases, remote sensing, especially terrestrial time-lapse imaging platforms, offer a means to better understand these fluvial systems. One such environment is found at the proglacial Isortoq River in southwestern Greenland, a river with a constantly shifting floodplain and remote Arctic location that make gauging and in situ measurements all but impossible. In order to derive relevant hydraulic parameters for this river, two true color (RGB) cameras were installed in July 2011, and these cameras collected over 10 000 half hourly time-lapse images of the river by September of 2012. Existing approaches for extracting hydraulic parameters from RGB imagery require manual or supervised classification of images into water and non-water areas, a task that was impractical for the volume of data in this study. As such, automated image filters were developed that removed images with environmental obstacles (e.g., shadows, sun glint, snow) from the processing stream. Further image filtering was accomplished via a novel automated histogram similarity filtering process. This similarity filtering allowed successful (mean accuracy 79.6 %) supervised classification of filtered images from training data collected from just 10 % of those images. Effective width, a hydraulic parameter highly correlated with discharge in braided rivers, was extracted from these classified images, producing a hydrograph proxy for the Isortoq River between 2011 and 2012. This hydrograph proxy shows agreement with historic flooding observed in other parts of Greenland in July 2012 and offers promise that the imaging platform and processing methodology presented here will be useful for future monitoring studies of remote rivers.
机译:遥远环境中的河流系统通常挑战,以监测和理解传统的测量设备难以安装或安全问题禁止现场测量。在这种情况下,遥感,尤其是陆地时间流逝成像平台,提供更好地理解这些河流系统的手段。在格陵兰州西南部的Proglacial Isortoq河上发现了一个这样的环境,这是一条不断变化的洪泛区和远程北极地点,使得衡量和原位测量是不可能的。为了获得该河流的相关液压参数,2011年7月安装了两种真正的颜色(RGB)摄像机,并将这些相机收集到2012年9月的河流超过10 000个半小时延时图像。现有的提取液压方法方法RGB Imagery的参数需要手动或监督图像的分类,以进入水和非水域,这是本研究中数据量不切实际的任务。因此,从处理流中开发了自动图像过滤器,从处理流中移除了具有环境障碍物(例如,阴影,太阳闪烁,雪)的图像。通过新颖的自动直方图相似性过滤过程完成进一步的图像滤波。这种相似性过滤允许成功(平均准确性79.6%)监督从仅10%的图像中收集的训练数据的过滤图像的分类。从这些分类的图像中提取有效宽度,与编织河中的放电高度相关的液压参数,从这些分类的图像中提取,为2011年和2012年间的Isortoq河流提供了一种水文编程。该水文代理显示了7月在格陵兰格陵兰其他地区观察到的历史洪水的协议2012年,提供了承诺,这里提出的成像平台和处理方法对于远程河流的未来监测研究将有用。

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